Decoupled molecular and inorganic framework dynamics in CH$_3$NH$_3$PbCl$_3$
M. Songvilay, Zitian Wang, V. Garcia Sakai, T. Guidi, M. Bari, Z. -G., Ye, Guangyong Xu, K. L. Brown, P. M. Gehring, and C. Stock

TL;DR
This study reveals that in CH$_3$NH$_3$PbCl$_3$, molecular and inorganic framework dynamics are decoupled, with molecular motions activated at ~95K and structural phase transitions at higher temperatures, impacting photovoltaic properties.
Contribution
It demonstrates the decoupling of molecular and inorganic lattice dynamics in CH$_3$NH$_3$PbCl$_3$, highlighting the different energy scales involved.
Findings
Molecular dynamics activate around 95K.
Structural phase transitions occur at 178K and 173K.
Molecular and lattice dynamics are decoupled.
Abstract
The organic-inorganic lead halide perovskites are composed of organic molecules imbedded in an inorganic framework. The compounds with general formula CHNHPbX (MAPbX) display large photovoltaic efficiencies for halogens =Cl, Br, and I in a wide variety of sample geometries and preparation methods. The organic cation and inorganic framework are bound by hydrogen bonds that tether the molecules to the halide anions, and this has been suggested to be important to the optoelectronic properties. We have studied the effects of this bonding using time-of-flight neutron spectroscopy to measure the molecular dynamics in CHNHPbCl (MAPbCl). Low-energy/high-resolution neutron backscattering reveals thermally-activated molecular dynamics with a characteristic temperature of 95\,K. At this same temperature, higher-energy neutron spectroscopy indicates…
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